A NOVEL ALGORITHM FOR FINDING ALL REDUCTS IN THE INCOMPLETE DECISION TABLE

Pham Viet Anh, Vu Duc Thi, Nguyen Ngoc Cuong
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Abstract

Attribute reduction, or attribute selection in the decision table, is a fundamental problem of rough set theory. Currently, many scientists are interested in and developing these issues. Unfortunately, most studies focus mainly on the complete decision table. On incomplete decision tables, researchers have proposed tolerance relations and designed attribute reduction algorithms based on different measures. However, these algorithms only return a reduct and do not preserve information in the decision tables. This paper will propose an efficient method to determine entire reducts of incomplete decision tables according to the relational database approach. In the complex case, this algorithm has exponential computational complexity. However, this algorithm has polynomial computational complexity in the different cases of databases.
寻找不完整判定表中所有还原的新算法
属性还原或决策表中的属性选择是粗糙集理论的一个基本问题。目前,许多科学家都对这些问题很感兴趣,并在不断研究。遗憾的是,大多数研究主要集中在完整决策表上。对于不完整的决策表,研究人员提出了容差关系,并设计了基于不同度量的属性缩减算法。然而,这些算法只能返回还原结果,并不能保留决策表中的信息。本文将根据关系数据库方法,提出一种有效的方法来确定不完整决策表的整个还原。在复杂情况下,该算法的计算复杂度为指数级。然而,在数据库的不同情况下,该算法的计算复杂度为多项式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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